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Low-spin ferric iron in primordial bridgmanite crystallized from a deep magma ocean.
Okuda, Yoshiyuki; Ohta, Kenji; Nishihara, Yu; Hirao, Naohisa; Wakamatsu, Tatsuya; Suehiro, Sho; Kawaguchi, Saori I; Ohishi, Yasuo.
Afiliación
  • Okuda Y; Department of Earth and Planetary Sciences, Tokyo Institute of Technology, Tokyo, 152-8550, Japan. okuda.y@eps.s.u-tokyo.ac.jp.
  • Ohta K; Department of Earth and Planetary Sciences, Graduate School of Science, The University of Tokyo, Bunkyo, Tokyo, 113-0033, Japan. okuda.y@eps.s.u-tokyo.ac.jp.
  • Nishihara Y; Department of Earth and Planetary Sciences, Tokyo Institute of Technology, Tokyo, 152-8550, Japan.
  • Hirao N; Geodynamics Research Center, Ehime University, Ehime, 790-8577, Japan.
  • Wakamatsu T; Japan Synchrotron Radiation Research Institute, Hyogo, 679-5198, Japan.
  • Suehiro S; Department of Earth and Planetary Sciences, Tokyo Institute of Technology, Tokyo, 152-8550, Japan.
  • Kawaguchi SI; Department of Earth and Planetary Sciences, Tokyo Institute of Technology, Tokyo, 152-8550, Japan.
  • Ohishi Y; Japan Synchrotron Radiation Research Institute, Hyogo, 679-5198, Japan.
Sci Rep ; 11(1): 19471, 2021 Sep 30.
Article en En | MEDLINE | ID: mdl-34593901
ABSTRACT
The crystallization of the magma ocean resulted in the present layered structure of the Earth's mantle. An open question is the electronic spin state of iron in bridgmanite (the most abundant mineral on Earth) crystallized from a deep magma ocean, which has been neglected in the crystallization history of the entire magma ocean. Here, we performed energy-domain synchrotron Mössbauer spectroscopy measurements on two bridgmanite samples synthesized at different pressures using the same starting material (Mg0.78Fe0.13Al0.11Si0.94O3). The obtained Mössbauer spectra showed no evidence of low-spin ferric iron (Fe3+) from the bridgmanite sample synthesized at relatively low pressure of 25 gigapascals, while that directly synthesized at a higher pressure of 80 gigapascals contained a relatively large amount. This difference ought to derive from the large kinetic barrier of Fe3+ rearranging from pseudo-dodecahedral to octahedral sites with the high-spin to low-spin transition in experiments. Our results indicate a certain amount of low-spin Fe3+ in the lower mantle bridgmanite crystallized from an ancient magma ocean. We therefore conclude that primordial bridgmanite with low-spin Fe3+ dominated the deeper part of an ancient lower mantle, which would contribute to lower mantle heterogeneity preservation and call for modification of the terrestrial mantle thermal evolution scenarios.

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Sci Rep Año: 2021 Tipo del documento: Article País de afiliación: Japón

Texto completo: 1 Colección: 01-internacional Base de datos: MEDLINE Idioma: En Revista: Sci Rep Año: 2021 Tipo del documento: Article País de afiliación: Japón
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